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Nonparametric tests for transition probabilities in nonhomogeneous Markov processes

机译:非均匀性马尔可夫过程中的过渡概率的非参数测试

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This paper proposes nonparametric two-sample tests for the direct comparison of the probabilities of a particular transition between states of a continuous time nonhomogeneous Markov process with a finite state space. The proposed tests are a linear nonparametric test, an -norm-based test and a Kolmogorov–Smirnov-type test. Significance level assessment is based on rigorous procedures, which are justified through the use of modern empirical process theory. Moreover, the -norm and the Kolmogorov–Smirnov-type tests are shown to be consistent for every fixed alternative hypothesis. The proposed tests are also extended to more complex situations such as cases with incompletely observed absorbing states and non-Markov processes. Simulation studies show that the test statistics perform well even with small sample sizes. Finally, the proposed tests are applied to data on the treatment of early breast cancer from the European Organization for Research and Treatment of Cancer (EORTC) trial 10854, under an illness-death model.
机译:本文提出了非参数的两样试验,用于直接比较具有有限状态空间的连续时间非均匀性马尔可夫过程的特定转变的概率。所提出的测试是一种线性非参数测试,基于夜种的测试和Kolmogorov-Smirnov型测试。意义程度评估基于严格的程序,通过使用现代实证过程理论是合理的。此外,对于每个固定的替代假设,显示-norm和Kolmogorov-smirnov型试验是一致的。所提出的测试也扩展到更复杂的情况,例如具有不完全观察到的吸收状态和非马尔可夫过程的病例。仿真研究表明,即使采样尺寸小,测试统计也表现良好。最后,在疾病死亡模型下,拟议的测试应用于来自欧洲研究和治疗癌症(EORTC)试验10854的研究和治疗的早期乳腺癌的数据。

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